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The E3 ligase β-TRCP1 earmarks OTUD3 for destruction to fine-tune cGAS activation
Jianfeng Chen1, Smaran Sivashankar1, Ying Wang2
1Lineberger Comprehensive Cancer Center, The University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, USA; Department of Biochemistry and Biophysics, The University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, USA.
Abstract:
Activation of cytosolic DNA sensing through cyclic GMP-AMP synthase (cGAS) induces the production of type I interferons and proinflammatory cytokines, which are essential for antiviral and antibacterial responses, inflammation, and immune modulation. While hyperactivation of cGAS leads to autoimmune diseases, its inactivation contributes to immune evasion and resistance to immunotherapies. Therefore, cGAS activity must be tightly regulated. One mechanism involves the deubiquitination and stabilization of cGAS by the deubiquitinase OTUD3; however, the upstream signals and pathophysiological cues governing OTUD3 regulation remain poorly understood. Here, we report that the E3 ubiquitin ligase β-TRCP1 targets OTUD3 for ubiquitination and proteasomal degradation. This recognition is dependent on RSK3-mediated phosphorylation of a conserved "ESG" motif in OTUD3, which serves as a phospho-degron for β-TRCP1 binding. Intriguingly, cytosolic DNA challenge inactivates the β-TRCP1/RSK3 pathway, resulting in OTUD3 stabilization and enhanced cGAS activation, representing a fine-tuning mechanism of innate immune signaling. Notably, this DNA-induced inactivation of RSK3 is independent of canonical Ras/MEK/extracellular signal-regulated kinase signaling and DNA damage-responsive kinases, but dependent on mTORC2 signaling. Collectively, our studies identify β-TRCP1/RSK3 as a previously unrecognized upstream signaling axis that regulates OTUD3 protein stability in response to DNA stress, thereby modulating cGAS-driven innate immune responses. This pathway presents a potential therapeutic target for modulating innate immunity in autoimmune diseases and cancer.
Insights
The cyclic GMP-AMP synthase (cGAS) pathway is regulated by OTUD3 stabilization. DNA stress inactivates the β-TRCP1/RSK3 pathway, stabilizing OTUD3 and boosting innate immunity against pathogens and cancer.
Area of Science:
- Innate immunity
- Signal transduction
- Molecular biology
Background:
- Cytosolic DNA sensing via cGAS triggers type I interferons and pro-inflammatory cytokines, crucial for immune responses.
- Dysregulated cGAS activity is linked to autoimmune diseases and impaired cancer immunotherapy.
- OTUD3 deubiquitinase stabilizes cGAS, but upstream regulators of OTUD3 remain unclear.
Purpose of the Study:
- To identify upstream regulators of OTUD3 protein stability.
- To elucidate the mechanism by which OTUD3 regulates cGAS activity in response to DNA stress.
- To explore the therapeutic potential of targeting this pathway.
Main Methods:
- Ubiquitination assays
- Phosphorylation site mapping
- Proteasomal degradation assays
- Western blotting
- Immunoprecipitation
- Cellular DNA challenge assays
Main Results:
- The E3 ubiquitin ligase β-TRCP1 targets OTUD3 for degradation.
- RSK3-mediated phosphorylation of a specific motif in OTUD3 creates a phospho-degron for β-TRCP1.
- Cytosolic DNA challenge inactivates the β-TRCP1/RSK3 pathway, stabilizing OTUD3.
- This stabilization enhances cGAS activation, modulated by mTORC2 signaling.
- The β-TRCP1/RSK3 axis regulates OTUD3 stability in response to DNA stress.
Conclusions:
- β-TRCP1 and RSK3 form a novel signaling axis controlling OTUD3 stability.
- This pathway fine-tunes cGAS-mediated innate immune signaling during DNA stress.
- Targeting the β-TRCP1/RSK3/OTUD3 pathway may offer therapeutic strategies for autoimmune diseases and cancer.
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